A compact, desktop size microscope, based on laser-plasma source and equipped with reflective condenser and diffractive Fresnel zone plate objective, operating in the extreme ultraviolet (EUV) region at the wavelength of 13.8 nm, was developed. The microscope is capable of capturing magnified images of objects with 95-nm full-pitch spatial resolution (48 nm 25–75% KE) and exposure time as low as a few seconds, combining reasonable acquisition conditions with stand-alone desktop footprint. Such EUV microscope can be regarded as a complementary imaging tool to already existing, well-established ones. Details about the microscope, characterization, resolution estimation and real sample images are presented and discussed
We present an extreme ultraviolet (EUV) microscope using a Schwarzschild objective which is optimize...
A laser-plasma double stream gas-puff target source coupled with Fresnel zone plate (FZP) optics, op...
Includes bibliographical references (page 1216).We have acquired images with a spatial resolution be...
A compact, desktop size microscope, based on laser-plasma source and equipped with reflective conden...
A compact, desktop size microscope, based on laser-plasma source and equipped with reflective conden...
We report on a very compact desk-top transmission extreme ultraviolet (EUV) microscope based on a la...
High resolution imaging methods and techniques are currently under development. One of them is an ex...
Various imaging methods and techniques capable of reaching a nanometer spatial resolution are curren...
In this work we present three experimental, compact desk-top imaging systems: SXR and EUV full field...
In the last 30 years much effort was made in order to develop compact laser-produced plasma sources ...
A tabletop, extreme ultraviolet (EUV) imaging system with nanometer-scale resolution has been develo...
Application of a compact laser plasma source of soft X-rays and extreme ultraviolet (EUV) in imaging...
We have demonstrated near-wavelength resolution microscopy in the extreme ultraviolet. Images of 50 ...
We present our recent results, related to nanoscale imaging in the extreme ultraviolet (EUV) and sof...
We present our recent results, related to nanoscale imaging in the extreme ultraviolet (EUV) and sof...
We present an extreme ultraviolet (EUV) microscope using a Schwarzschild objective which is optimize...
A laser-plasma double stream gas-puff target source coupled with Fresnel zone plate (FZP) optics, op...
Includes bibliographical references (page 1216).We have acquired images with a spatial resolution be...
A compact, desktop size microscope, based on laser-plasma source and equipped with reflective conden...
A compact, desktop size microscope, based on laser-plasma source and equipped with reflective conden...
We report on a very compact desk-top transmission extreme ultraviolet (EUV) microscope based on a la...
High resolution imaging methods and techniques are currently under development. One of them is an ex...
Various imaging methods and techniques capable of reaching a nanometer spatial resolution are curren...
In this work we present three experimental, compact desk-top imaging systems: SXR and EUV full field...
In the last 30 years much effort was made in order to develop compact laser-produced plasma sources ...
A tabletop, extreme ultraviolet (EUV) imaging system with nanometer-scale resolution has been develo...
Application of a compact laser plasma source of soft X-rays and extreme ultraviolet (EUV) in imaging...
We have demonstrated near-wavelength resolution microscopy in the extreme ultraviolet. Images of 50 ...
We present our recent results, related to nanoscale imaging in the extreme ultraviolet (EUV) and sof...
We present our recent results, related to nanoscale imaging in the extreme ultraviolet (EUV) and sof...
We present an extreme ultraviolet (EUV) microscope using a Schwarzschild objective which is optimize...
A laser-plasma double stream gas-puff target source coupled with Fresnel zone plate (FZP) optics, op...
Includes bibliographical references (page 1216).We have acquired images with a spatial resolution be...